胶原合成、组装和矿化的机械生物学

IF 5.9 1区 医学 Q1 DENTISTRY, ORAL SURGERY & MEDICINE
S. Wang, F. Song, S. Liang, C. Huang, H. Yang
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引用次数: 0

摘要

矿化胶原原纤维构成了胶原矿化组织(cmt)的基本结构单位,特别是在骨和牙本质中,它们在维持机械弹性和结构完整性方面起着关键作用。cmt的机械微环境是由肌肉收缩、身体支撑、血管系统压力、正畸运动和咀嚼等多种生理负荷动态塑造的。虽然许多综述已经涵盖了细胞对机械刺激的反应,但它们通常集中在广义细胞水平上的细胞分化,缺乏矿化胶原形成的微观和动态视角。有一个迫切需要审查的行为,胶原原纤维作为主要效应器,在机械刺激的反应。在细胞区室变化和结构演变的基础上,我们分析了机械刺激对矿化胶原形成的影响,通过三个不同的阶段:1)细胞内胶原合成,机械刺激可以在基因水平上调节细胞内胶原合成;2)细胞外胶原组装,适当的机械刺激可诱导胶原纤维有序排列;3)纤维内胶原矿化,其中机械刺激可以促进有效的纤维内矿化。本文回顾了矿化胶原蛋白的机械生物学历程,介绍了该领域的最新研究进展,并提出了未来的展望。本文综述有助于开发新的治疗策略来改善CMT的内稳态,并引起人们对仿生机械微环境在组织工程中的应用的关注。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanobiology of Collagen Synthesis, Assembly, and Mineralization
Mineralized collagen fibrils constitute the fundamental structural units within collagenous mineralized tissues (CMTs), particularly in bone and dentin, where they play a critical role in maintaining mechanical resilience and structural integrity. The mechanical microenvironment of CMTs is dynamically shaped by diverse physiologic loads from muscle contraction, body support, vascular system pressure, orthodontic movement, and mastication. While many reviews have covered cellular responses to mechanical stimuli, they often focus on cell differentiation at the generalized cellular level and lack a microscopic and dynamic perspective on mineralized collagen formation. There is an urgent need to review the behavior of collagen fibrils as primary effectors in response to mechanical stimuli. On the basis of compartmental changes and structural evolution, herein we analyze the effects of mechanical stimuli on mineralized collagen formation through 3 distinct stages: 1) intracellular collagen synthesis, where mechanical stimuli can regulate intracellular collagen synthesis at the gene level; 2) extracellular collagen assembly, where appropriate mechanical stimuli can induce orderly collagen fibril arrangement; and 3) intrafibrillar collagen mineralization, where mechanical stimuli can facilitate effective intrafibrillar mineralization. In this review, we trace the mechanobiological journey of mineralized collagen, showcase the latest research advancements in this field, and propose future perspectives. This review may aid in developing novel therapeutic strategies to improve CMT homeostasis and draw attention to the application of biomimetic mechanical microenvironments in tissue engineering.
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来源期刊
Journal of Dental Research
Journal of Dental Research 医学-牙科与口腔外科
CiteScore
15.30
自引率
3.90%
发文量
155
审稿时长
3-8 weeks
期刊介绍: The Journal of Dental Research (JDR) is a peer-reviewed scientific journal committed to sharing new knowledge and information on all sciences related to dentistry and the oral cavity, covering health and disease. With monthly publications, JDR ensures timely communication of the latest research to the oral and dental community.
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